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Convolutional Neural Networks for the Detection of Diseased Hearts Using CT Images and Left Atrium Patches

机译:使用CT图像和左心脏贴片检测患病心脏的卷积神经网络

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Cardiovascular disease is a leading cause of death in the United States. The identification of cardiac diseases on conventional three-dimensional (3D) CT can have many clinical applications. An automated method that can distinguish between healthy and diseased hearts could improve diagnostic speed and accuracy when the only modality available is conventional 3D CT. In this work, we proposed and implemented convolutional neural networks (CNNs) to identify diseased hears on CT images. Six patients with healthy hearts and six with previous cardiovascular disease events received chest CT. After the left atrium for each heart was segmented, 2D and 3D patches were created. A subset of the patches were then used to train separate convolutional neural networks using leave-one-out cross-validation of patient pairs. The results of the two neural networks were compared, with 3D patches producing the higher testing accuracy. The full list of 3D patches from the left atrium was then classified using the optimal 3D CNN model, and the receiver operating curves (ROCs) were produced. The final average area under the curve (AUC) from the ROC curves was 0.840 ± 0.065 and the average accuracy was 78.9% ± 5.9%. This demonstrates that the CNN-based method is capable of distinguishing healthy hearts from those with previous cardiovascular disease.
机译:心血管疾病是美国死亡的主要原因。常规三维(3D)CT上的心脏病的鉴定可以具有许多临床应用。当唯一可用的模式是传统的3D CT时,一种可以区分健康和患病的心脏的自动化方法可以改善诊断速度和准确性。在这项工作中,我们提出并实施了卷积神经网络(CNNS),以识别对CT图像的患者听到患者。六名健康心脏和六名患者,以前的心血管疾病事件发生胸部CT。在对每个心脏的左心房进行后,将产生2D和3D贴剂。然后使用贴片的一个子集用于使用患者对的休留一次交叉验证训练单独的卷积神经网络。比较了两个神经网络的结果,3D贴片产生更高的测试精度。然后使用最佳3D CNN模型分类来自左上庭的3D补丁的完整列表,并产生接收器操作曲线(ROC)。来自ROC曲线的曲线(AUC)下的最终平均面积为0.840±0.065,平均精度为78.9%±5.9%。这表明基于CNN的方法能够将健康的心灵与先前的心血管疾病区分开来。

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